Abstract
Reliable predictions of the flow rate and viscous dissipation in the melt conveying zone of single-screw extruders are crucial for designing high-quality
and efficient extrusion processes. Full-scale computational fluid dynamics simulations offer deep insights into the process, but they cover only specific use cases. Conversely, state-of-the-art analytical approximation models suffer from a systematic error by neglecting channel curvature. To overcome these limitations, we employed a hybrid modeling approach that efficiently combines analytical, numerical, and data-based techniques. First, the mathematical problem was formulated for a three-dimensional, isothermal Stokes flow of power-law fluids in curved channel segments of unit length, and the theory of similarity was applied to render it in a dimensionless form. Using the finite-volume method, the flow problem was then solved numerically for a wide range of
extrusion setups. Finally, by means of symbolic regression and genetic programming, three dimensionless approximation equations were derived from
the numerical dataset. These regression models provide continuous and
remarkably accurate predictions of both flow rate and viscous dissipation rate,
and clearly outperform existing approximations due to the included effects of
channel curvature. Implemented within screw design software, our novel
regression models will enable faster progress in screw design and process
troubleshooting.
| Originalsprache | Englisch |
|---|---|
| Seiten (von - bis) | 5566-5587 |
| Seitenumfang | 22 |
| Fachzeitschrift | Polymer Engineering and Science |
| Volume | 64 |
| Ausgabenummer | 11 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - Sep. 2024 |
Wissenschaftszweige
- 205 Werkstofftechnik
- 205011 Kunststofftechnik
- 102009 Computersimulation
- 102033 Data Mining
- 104018 Polymerchemie
- 502059 Kreislaufwirtschaft
- 205012 Kunststoffverarbeitung
- 104019 Polymerwissenschaften
- 502058 Digitale Transformation
JKU-Schwerpunkte
- Digital Transformation
- Sustainable Development: Responsible Technologies and Management
Projekte
- 1 Abgeschlossen
-
Design and Optimization of Wave-Dispersion Screws
Roland, W. (Projektleiter*in)
30.06.2020 → 30.09.2023
Projekt: Geförderte Forschung › FWF - Österreichischer Wissenschaftsfonds
Aktivitäten
- 1 Posterpräsentation
-
Modellierung von Einschneckenextrudern - Fördermodelle für gekrümmte Schneckenkanäle
Herzog, D. (Vortragende*r), Roland, W. (Mitwirkende*r), Marschik, C. (Mitwirkende*r) & Berger-Weber, G. R. (Mitwirkende*r)
19 Sep. 2023Aktivität: Vortrag oder Präsentation › Posterpräsentation › Science-to-public
Forschungsdatensätze
-
Melt conveying models for three-dimensional curved screw channels
Herzog, D. (Urheber*in), Roland, W. (Betreuer*in) & Lehner, F. (Mitwirkende*r), Zenodo, 22 Jän. 2024
DOI: 10.5281/zenodo.10802542, https://zenodo.org/records/10802542
Datensatz
-
Simulation results for three-dimensional (confined) curved screw channels
Herzog, D. (Urheber*in), Marschik, C. (Mitwirkende*r), Gugg, A. (Mitwirkende*r) & Roland, W. (Mitwirkende*r), Zenodo, 22 Jän. 2024
Datensatz
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